Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

My c code:

#include <stdio.h>

foo()
{
  char buffer[8];
}

main()
{
  foo();
  return 0;
}

I compile it using gcc -ggdb -mpreferred-stack-boundary=2 -o bar bar.c

When I load it using GDB ./bar I see that inside the foo function the code is:

sub $0x0c,$esp

Why is this happening?

I want to buffer to take 8 bytes in the stack so it should be sub $0x8,$esp!

Why can't I set stack boundary to 4 bytes?

Help!

share|improve this question
    
First make sure that it's 0xC, and not 0xC0. Both are anyway aligned to 4 so -mpreferred-stack-boundary did its job. A function might require more stack than the sum of your local variables, e.g. for temporary data and e.g. for passing data to other functions. –  nos Apr 10 '14 at 7:55
    
0xC0 != 0x0C ... –  Mats Petersson Apr 10 '14 at 7:56
    
but why its not doing sub $0x8,$esp –  user3270649 Apr 10 '14 at 7:56
    
@user3270649 because printf expects its arguments to arrive on the stack, so foo() adds a pointer to your "my first program!" string onto the stack too –  nos Apr 10 '14 at 7:59
    
i edited my question! –  user3270649 Apr 10 '14 at 8:05

1 Answer 1

I can't reproduce exactly what you are seeing, but on my 4.8.2 version of gcc, the option does affect the amount of stack used with this code (make sure "buffer" is used to avoid it being optimised away, and fix the warnings for no return type/argument types):

#include <stdio.h>

void foo(void)
{
    char buffer[8];
    buffer[0] = 'a';
    buffer[1] = '\n';
    buffer[2] = 0;
    printf("my first program! %s\n", buffer);
}

int main()
{
    foo();
    return 0;
}

Compiled with -mpreferred-stack-boundary=2 and -mpreferred-stack-boundary=4, and the difference between the generated assembler is notable:

$ diff -u stb-2.s stb-4.s 
--- stb-2.s 2014-04-10 09:00:39.546038191 +0100
+++ stb-4.s 2014-04-10 09:00:58.895108979 +0100
@@ -15,11 +15,11 @@
    .cfi_offset 5, -8
    movl    %esp, %ebp
    .cfi_def_cfa_register 5
-   subl    $16, %esp
-   movb    $97, -8(%ebp)
-   movb    $10, -7(%ebp)
-   movb    $0, -6(%ebp)
-   leal    -8(%ebp), %eax
+   subl    $40, %esp
+   movb    $97, -16(%ebp)
+   movb    $10, -15(%ebp)
+   movb    $0, -14(%ebp)
+   leal    -16(%ebp), %eax
    movl    %eax, 4(%esp)
    movl    $.LC0, (%esp)
 .LEHB0:
@@ -67,9 +67,10 @@
    .cfi_offset 5, -8
    movl    %esp, %ebp
    .cfi_def_cfa_register 5
+   andl    $-16, %esp
    call    _Z3foov
    movl    $0, %eax
-   popl    %ebp
+   leave
    .cfi_restore 5
    .cfi_def_cfa 4, 4
    ret

So, at least in gcc 4.8.2. for x86-32, the option has an effect.

Of course, the default according to the docs is -mpreferred-stack-boundary=2, so maybe that's why you can't see any difference from "without" (Although in my experiments, it seems that it's -mpreferred-stack-boundary=4). [Moment passes] Ah, the default has been changed over time, so the 4.4.2 docs online says 2, my info gcc for 4.8.2 says 4, which explains the difference.

As to why your code is allocating twelve bytes of stack-space - look at how printf is called:

movl    $.LC0, (%esp)
call    printf

If the compiler can, it will pre-allocate argument space for function calls at the start of the function, rather than use push $.LC0 as it would be in this case. It's not much difference, but it saves at least one instruction for cleanup at the other side of printf (and it makes it MUCH easier to deal with stack-relative offsets within the produced code, since the compiler doesn't have to keep track of where the current stack-pointer is - it's always at a constant place after the prologue code at the beginning of the function, all the way to the end of the function). Since the space is ultimately required anyway, there's no point in "saving 4 bytes".

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.